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2022 | OriginalPaper | Buchkapitel

15. Effect of High Temperature on the Permeability Evolution and Failure Response of Granite Under Triaxial Compression

verfasst von : Sheng-Qi Yang

Erschienen in: Mechanical Behavior and Damage Fracture Mechanism of Deep Rocks

Verlag: Springer Nature Singapore

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Abstract

Granite is potentially an excellent medium for the disposal of high-level nuclear waste (HLW) because it exhibits a low native permeability and high integrity (Yang et al.,.Geothermics 65:180–197, 2017;Yang et al.,.Geothermics 72:124–137, 2018;; Zhao et al.,.Int J Rock Mech Min Sci 76:10–17, 2015). Beishan granite has been selected as a candidate for HLW disposal in China because of its low native permeability.

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Literatur
Zurück zum Zitat Chaki S, Takarli M, Agbodjan WP (2008) Influence of thermal damage on physical properties of a granite rock: porosity, permeability and ultrasonic wave evolutions. Constr Build Mater 22(7):1456–1461CrossRef Chaki S, Takarli M, Agbodjan WP (2008) Influence of thermal damage on physical properties of a granite rock: porosity, permeability and ultrasonic wave evolutions. Constr Build Mater 22(7):1456–1461CrossRef
Zurück zum Zitat Chen S, Yang C, Wang G (2017) Evolution of thermal damage and permeability of Beishan granite. Appl Therm Eng 110:1533–1542CrossRef Chen S, Yang C, Wang G (2017) Evolution of thermal damage and permeability of Beishan granite. Appl Therm Eng 110:1533–1542CrossRef
Zurück zum Zitat Chen YL, Wang SR, Ni J, Azzam R, Fernandez-Steeger TM (2017) An experimental study of the mechanical properties of granite after high temperature exposure based on mineral characteristics. Engineering geology 220:234–242 Chen YL, Wang SR, Ni J, Azzam R, Fernandez-Steeger TM (2017) An experimental study of the mechanical properties of granite after high temperature exposure based on mineral characteristics. Engineering geology 220:234–242
Zurück zum Zitat Consenza P, Ghoreychi M (1999) Effects of very low permeability on the long-term evolution of a storage cavern in rock salt. Int J Rock Mech Min Sci 36:527–533CrossRef Consenza P, Ghoreychi M (1999) Effects of very low permeability on the long-term evolution of a storage cavern in rock salt. Int J Rock Mech Min Sci 36:527–533CrossRef
Zurück zum Zitat Davy CA, Skoczylas F, Barnichon JD, Lebon P (2007) Permeability of macro-cracked argillite under confinement: gas and water testing. Phys Chem Earth 32:667–668CrossRef Davy CA, Skoczylas F, Barnichon JD, Lebon P (2007) Permeability of macro-cracked argillite under confinement: gas and water testing. Phys Chem Earth 32:667–668CrossRef
Zurück zum Zitat Fairhurst CE, Hudson JA (1999) Draft ISRM suggested method for the complete stress-strain curve for intact rock in uniaxial compression. Int J Rock Mech Min Sci 36(3):279–289CrossRef Fairhurst CE, Hudson JA (1999) Draft ISRM suggested method for the complete stress-strain curve for intact rock in uniaxial compression. Int J Rock Mech Min Sci 36(3):279–289CrossRef
Zurück zum Zitat Fan LF, Gao JW, Wu ZJ, Yang SQ, Ma GW (2018) An investigation of thermal effects on micro-properties of granite by X-ray CT technique. Appl Therm Eng 140:505–519CrossRef Fan LF, Gao JW, Wu ZJ, Yang SQ, Ma GW (2018) An investigation of thermal effects on micro-properties of granite by X-ray CT technique. Appl Therm Eng 140:505–519CrossRef
Zurück zum Zitat Gautam PK, Verma AK, Sharma P, Singh TN (2018) Evolution of thermal damage threshold of Jalore granite. Rock Mech Rock Eng 51(9):2949–2956CrossRef Gautam PK, Verma AK, Sharma P, Singh TN (2018) Evolution of thermal damage threshold of Jalore granite. Rock Mech Rock Eng 51(9):2949–2956CrossRef
Zurück zum Zitat Griffiths L, Heap MJ, Baud P, Schmittbuhl J (2017) Quantification of microcrack characteristics and implications for stiffness and strength of granite. Int J Rock Mech Min Sci 100:138–150CrossRef Griffiths L, Heap MJ, Baud P, Schmittbuhl J (2017) Quantification of microcrack characteristics and implications for stiffness and strength of granite. Int J Rock Mech Min Sci 100:138–150CrossRef
Zurück zum Zitat Gustafsson SE (1991) Transient plane source techniques for thermal conductivity and thermal difusivity measurements of solid materials. Rev Sci Instrum 62:797–804CrossRef Gustafsson SE (1991) Transient plane source techniques for thermal conductivity and thermal difusivity measurements of solid materials. Rev Sci Instrum 62:797–804CrossRef
Zurück zum Zitat Heap MJ, Baud P, Meredith PG, Bell AF, Main IG (2009) Time-dependent brittle creep in Darley Dale sandstone. J Geophys Res 114 Heap MJ, Baud P, Meredith PG, Bell AF, Main IG (2009) Time-dependent brittle creep in Darley Dale sandstone. J Geophys Res 114
Zurück zum Zitat Huang YH, Yang SQ, Tian WL, Zhao J, Ma D, Zhang CS (2017) Physical and mechanical behavior of granite containing pre-existing holes after high temperature treatment. Arch Civil Mech Eng 17(4):912–925 Huang YH, Yang SQ, Tian WL, Zhao J, Ma D, Zhang CS (2017) Physical and mechanical behavior of granite containing pre-existing holes after high temperature treatment. Arch Civil Mech Eng 17(4):912–925
Zurück zum Zitat Hoek E, Brown ET (1980) Underground excavation in rock. Institution of Mining and Metallurgy, London Hoek E, Brown ET (1980) Underground excavation in rock. Institution of Mining and Metallurgy, London
Zurück zum Zitat Hoek E (1990) Estimating Mohr–Coulomb friction and cohesion values from the Hoek–Brown failure criterion. Int J Rock Mech Min Sci Geomech Abstr 12:227–229 Hoek E (1990) Estimating Mohr–Coulomb friction and cohesion values from the Hoek–Brown failure criterion. Int J Rock Mech Min Sci Geomech Abstr 12:227–229
Zurück zum Zitat Jiang G, Zuo J, Li L, Ma T, Wei X (2018) The evolution of cracks in Maluanshan granite subjected to different temperature processing. Rock Mech Rock Eng 51(6):1683–1695 Jiang G, Zuo J, Li L, Ma T, Wei X (2018) The evolution of cracks in Maluanshan granite subjected to different temperature processing. Rock Mech Rock Eng 51(6):1683–1695
Zurück zum Zitat Log T, Gustafsson SE (1995) Transient plane source (TPS) technique for measuring thermal transport properties of building materials. Fire Mater 19:43–49CrossRef Log T, Gustafsson SE (1995) Transient plane source (TPS) technique for measuring thermal transport properties of building materials. Fire Mater 19:43–49CrossRef
Zurück zum Zitat Mckee CR, Bumb AC, Koenig RA (1988) Stress-dependent permeability and porosity of coal and other geologic formations. SPE Form Eval 3(01):81–91CrossRef Mckee CR, Bumb AC, Koenig RA (1988) Stress-dependent permeability and porosity of coal and other geologic formations. SPE Form Eval 3(01):81–91CrossRef
Zurück zum Zitat Mitchell EK, Fialko Y, Brown KM (2013) Temperature dependence of frictional healing of Westerly granite: Experimental observations and numerical simulations. Geochem Geophys Geosyst 14(3):567–582CrossRef Mitchell EK, Fialko Y, Brown KM (2013) Temperature dependence of frictional healing of Westerly granite: Experimental observations and numerical simulations. Geochem Geophys Geosyst 14(3):567–582CrossRef
Zurück zum Zitat Nasseri MHB, Schubnel A, Young RP (2007) Coupled evolutions of fracture toughness and elastic wave velocities at high crack density in thermally treated Westerly granite. Int J Rock Mech Min Sci 44(4):601–616CrossRef Nasseri MHB, Schubnel A, Young RP (2007) Coupled evolutions of fracture toughness and elastic wave velocities at high crack density in thermally treated Westerly granite. Int J Rock Mech Min Sci 44(4):601–616CrossRef
Zurück zum Zitat Ranjith PG, Viete DR, Chen BJ, Perera MS (2012) Transformation plasticity and the effect of temperature on the mechanical behaviour of Hawkesbury sandstone at atmospheric pressure. Eng Geol 151:120–127CrossRef Ranjith PG, Viete DR, Chen BJ, Perera MS (2012) Transformation plasticity and the effect of temperature on the mechanical behaviour of Hawkesbury sandstone at atmospheric pressure. Eng Geol 151:120–127CrossRef
Zurück zum Zitat Shao S, Ranjith PG, Wasantha PLP, Chen BK (2015) Experimental and numerical studies on the mechanical behaviour of Australian Strathbogie granite at high temperatures: An application to geothermal energy. Geothermics 54:96–108CrossRef Shao S, Ranjith PG, Wasantha PLP, Chen BK (2015) Experimental and numerical studies on the mechanical behaviour of Australian Strathbogie granite at high temperatures: An application to geothermal energy. Geothermics 54:96–108CrossRef
Zurück zum Zitat Sun Q, Zhang W, Xue L, Zhang Z, Su T (2015) Thermal damage pattern and thresholds of granite. Environ Earth Sci 74(3):2341–2349CrossRef Sun Q, Zhang W, Xue L, Zhang Z, Su T (2015) Thermal damage pattern and thresholds of granite. Environ Earth Sci 74(3):2341–2349CrossRef
Zurück zum Zitat Sun SH (1987) The choice of calculating scheme of mica formula. Acta Petrol Sin 4:72–82 (in Chinese) Sun SH (1987) The choice of calculating scheme of mica formula. Acta Petrol Sin 4:72–82 (in Chinese)
Zurück zum Zitat Sundberg J, Hellström G (2009) Inverse modelling of thermal conductivity from temperature measurements at the Prototype Repository, Äspö HRL. Int J Rock Mech Min Sci 46(6):1029–1041CrossRef Sundberg J, Hellström G (2009) Inverse modelling of thermal conductivity from temperature measurements at the Prototype Repository, Äspö HRL. Int J Rock Mech Min Sci 46(6):1029–1041CrossRef
Zurück zum Zitat Urquhart A, Bauer S (2015) Experimental determination of single-crystal halite thermal conductivity, diffusivity and specific heat from 75 C to 300 C. Int J Rock Mech Min Sci 78:350–352CrossRef Urquhart A, Bauer S (2015) Experimental determination of single-crystal halite thermal conductivity, diffusivity and specific heat from 75 C to 300 C. Int J Rock Mech Min Sci 78:350–352CrossRef
Zurück zum Zitat Williams H, Turner FJ, Gilbert CM (1954) Petrography. freeman, San Francisco Williams H, Turner FJ, Gilbert CM (1954) Petrography. freeman, San Francisco
Zurück zum Zitat Wong TF, David C, Zhu W (1997) The transition from brittle faulting to cataclastic flow in porous sandstones. Mech Deformat J Geophys Res 102(B2):3009–3025CrossRef Wong TF, David C, Zhu W (1997) The transition from brittle faulting to cataclastic flow in porous sandstones. Mech Deformat J Geophys Res 102(B2):3009–3025CrossRef
Zurück zum Zitat Xu P, Yang SQ (2019) Influence of stress and high-temperature treatment on the permeability evolution behavior of sandstone. Acta Mech Sin 35(2):419–432CrossRef Xu P, Yang SQ (2019) Influence of stress and high-temperature treatment on the permeability evolution behavior of sandstone. Acta Mech Sin 35(2):419–432CrossRef
Zurück zum Zitat Yang SQ, Ranjith PG, Huang YH, Yin PF, Jing HW, Gui YL, Yu QL (2015) Experimental investigation on mechanical damage characteristics of sandstone under triaxial cyclic loading. Geophys J Int 201:662–682CrossRef Yang SQ, Ranjith PG, Huang YH, Yin PF, Jing HW, Gui YL, Yu QL (2015) Experimental investigation on mechanical damage characteristics of sandstone under triaxial cyclic loading. Geophys J Int 201:662–682CrossRef
Zurück zum Zitat Yang SQ, Ranjith PG, Jing HW, Tian WL, Ju Y (2017) An experimental investigation on thermal damage and failure mechanical behavior of granite after exposure to different high temperature treatments. Geothermics 65:180–197CrossRef Yang SQ, Ranjith PG, Jing HW, Tian WL, Ju Y (2017) An experimental investigation on thermal damage and failure mechanical behavior of granite after exposure to different high temperature treatments. Geothermics 65:180–197CrossRef
Zurück zum Zitat Yang SQ, Tian WL, Huang YH (2018) Failure mechanical behavior of pre-holed granite specimens after elevated temperature treatment by particle flow code. Geothermics 72:124–137CrossRef Yang SQ, Tian WL, Huang YH (2018) Failure mechanical behavior of pre-holed granite specimens after elevated temperature treatment by particle flow code. Geothermics 72:124–137CrossRef
Zurück zum Zitat Yang SQ, Tian WL, Derek Elsworth, Wang JG, Fan LF (2020) An experimental study of effect of high temperature on the permeability evolution and failure response of granite under triaxial compression. Rock Mech Rock Eng 53:4403–4427 Yang SQ, Tian WL, Derek Elsworth, Wang JG, Fan LF (2020) An experimental study of effect of high temperature on the permeability evolution and failure response of granite under triaxial compression. Rock Mech Rock Eng 53:4403–4427
Zurück zum Zitat Yin T, Li X, Cao W, Xia K (2015) Effects of thermal treatment on tensile strength of Laurentian granite using Brazilian test. Rock Mech Rock Eng 48(6):2213–2223CrossRef Yin T, Li X, Cao W, Xia K (2015) Effects of thermal treatment on tensile strength of Laurentian granite using Brazilian test. Rock Mech Rock Eng 48(6):2213–2223CrossRef
Zurück zum Zitat Zhang F, Zhao J, Hu D, Skoczylas F, Shao J (2018) Laboratory investigation on physical and mechanical properties of granite after heating and water-cooling treatment. Rock Mech Rock Eng 51(3):677–694CrossRef Zhang F, Zhao J, Hu D, Skoczylas F, Shao J (2018) Laboratory investigation on physical and mechanical properties of granite after heating and water-cooling treatment. Rock Mech Rock Eng 51(3):677–694CrossRef
Zurück zum Zitat Zhao XG, Wang J, Chen F, Li PF, Ma LK, Xie JL, Liu YM (2016) Experimental investigations on the thermal conductivity characteristics of Beishan granitic rocks for China’s HLW disposal. Tectonophysics 683:124–137CrossRef Zhao XG, Wang J, Chen F, Li PF, Ma LK, Xie JL, Liu YM (2016) Experimental investigations on the thermal conductivity characteristics of Beishan granitic rocks for China’s HLW disposal. Tectonophysics 683:124–137CrossRef
Zurück zum Zitat Zhao XG, Cai M, Wang J, Li PF (2015) Strength comparison between cylindrical and prism specimens of Beishan granite under uniaxial compression. Int J Rock Mech Min Sci 76:10–17CrossRef Zhao XG, Cai M, Wang J, Li PF (2015) Strength comparison between cylindrical and prism specimens of Beishan granite under uniaxial compression. Int J Rock Mech Min Sci 76:10–17CrossRef
Zurück zum Zitat Zhao XG, Zhao Z, Guo Z et al (2018) Influence of Thermal Treatment on the Thermal Conductivity of Beishan Granite. Rock Mech Rock Eng 51(7):1–20CrossRef Zhao XG, Zhao Z, Guo Z et al (2018) Influence of Thermal Treatment on the Thermal Conductivity of Beishan Granite. Rock Mech Rock Eng 51(7):1–20CrossRef
Zurück zum Zitat Zhu TT, Jing HW, Su HJ, Yin Q, Du MR, Han GS (2016) Physical and mechanical properties of sandstone containing a single fissure after exposure to high temperatures. Int J Mining Sci Technol 26(2):319–325CrossRef Zhu TT, Jing HW, Su HJ, Yin Q, Du MR, Han GS (2016) Physical and mechanical properties of sandstone containing a single fissure after exposure to high temperatures. Int J Mining Sci Technol 26(2):319–325CrossRef
Metadaten
Titel
Effect of High Temperature on the Permeability Evolution and Failure Response of Granite Under Triaxial Compression
verfasst von
Sheng-Qi Yang
Copyright-Jahr
2022
Verlag
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-16-7739-7_15